A front-facing airflow opening directs heat from the processor toward the display module to improve cooling efficiency.
Optical sensing unit captures biometric data through display layers, eliminating device flipping and reducing installation costs.
A speech conversion system uses beamforming and face detection to isolate target audio inputs for accurate transcription.
A flexible display moves into an internal cavity when folded, preventing delamination caused by small radius curvature in clamshell devices.
Sliding the backbone member along hinge mechanisms prevents internal exposure while maintaining smooth folding operations.
Removable bridges bind the clickpad portion during molding, then detach to allow rotation, reducing assembly steps while maintaining structural integrity.
Adjusts multi-biometric recognition mode based on available devices to solve inconvenient unlocking in folded state.
A touch control method adapts the target area on dual screens based on device attitude and holding information.
Physical crown rotates virtual objects to select surfaces, resolving touch precision limits on small displays.
A hinge assembly uses offset turning axes and a transmission unit to rotate connection members in opposite directions.
A rotatable camera module adjusts its position to accommodate structural deformation in flexible display devices.
A portable device integrates a movable navigation panel and adjustable display screen for versatile user interaction.
Varying photo spacer widths reduce extrusion and improve foldability by distributing stress during bending.
Segmented hinge cover shell parts extend to protect internal mechanisms while enabling airflow through integrated channels.
Direct chip attachment of CPU to substrate eliminates motherboard, resolving size constraints in wearable and IoT devices.
Pivoting panels create a private alcove that protects sensitive data and improves screen visibility.
A pressure sensor array detects simultaneous lower and higher inputs to calculate a differential for precise object movement.
A power management circuit adjusts output signals based on panel driving modes to optimize energy usage.
Merging the touch-sensitive unit with the apparatus body eliminates extra layers, reducing thickness and preventing optical degradation.
A rotatable display apparatus uses graduated joints to pivot between landscape and portrait orientations while maintaining a horizontal keyboard.
A spring clip mounted on the hinge rod increases torque through elastic force.
An electromagnet shifts a carrier plate to block a camera lens, resolving the trade-off between privacy protection and operational convenience.
A privacy cover slider uses a reflector to direct LED light to a top indicator, providing a visible camera status signal.
A dual-sided touch interface selects elements on a display and manipulates non-selected items via rear surface slide motions.
A portable terminal uses a hexahedral connecting unit to house buttons between rotatable panels.
A second body with a support structure rotates to separate the operational surface from the ground.
Rear touch panel selection prevents erroneous inputs on small screens by enabling one-handed operation without hiding application content.
Pivot structures connect three screen modules, allowing rotation around central axes to resolve single-screen resolution limits.
Integrating a backlit transparent display into the case improves aesthetic appeal while increasing device complexity.
Sliding link mechanisms adjust chassis geometry to eliminate display gaps during rotation.
A secondary processor controls an ancillary interface that segments primary functions, reducing interaction time and improving convenience.
Rotating support plates create an accommodating space for the bendable display, enabling complete folding without exceeding the screen's bending radius.
A hinge assembly rotates dual display panels around three axes, resolving the trade-off between versatile functionality and portability.
Controller links displayed objects across multiple touch panels within a time window, resolving the trade-off between processing capacity and operation ease.
Magnetic induction module detects field strength to switch host system state, resolving dormant entry limits at non-preset positions.
User equipment changes capacitance values at specific frequencies to bypass wireless transmission intervals and reduce interaction delay.
Merging structural support with thermal conduction lowers operating temperatures without adding weight or complexity to wearable displays.
A head-mounted display optical component uses a central lens surrounded by micro lenses to widen the field of view.
Segmented display areas connected by flexible bridges accommodate deformation, while stopper units prevent support member rotation to maintain image clarity.
Flex arms and snap domes replace powered actuators to deliver tactile feedback while reducing power consumption and structural complexity.
Dynamic sliding supports driven by magnetic forces prevent screen wrinkles in foldable displays, preserving panel integrity and service life.
A user-adaptive virtual keyboard dynamically adjusts key size and spacing to match individual hand profiles.
N shafts and transmission structures rotate sequentially to maintain constant inner arc length during bending, resolving structural integrity trade-offs.
Dynamic acoustic signature selection compensates for support configuration changes, maintaining measurement precision during touch detection.
Electronic device detects layout change events to display recommended arrangements, reducing manual input complexity.
A modular docking case connects auxiliary hardware to portable devices via an electrical bus for on-demand resource expansion.
An asymmetric tapered design concentrates internal components to reduce hand strain while allowing the device to stand upright without an external kickstand.
Portable terminal displays wearable device information and senses movement to resolve the trade-off between device complexity and user interaction.
Asymmetric foldable mechanism reduces device thickness by nesting sub-mechanisms, accommodating component variations while minimizing folded profile.